| Literature DB >> 29041597 |
Daniel Burt, Abdelrahman Al-Attili, Zuo Li, Frédéric Gardès, Moïse Sotto, Naoki Higashitarumizu, Yasuhiko Ishikawa, Katsuya Oda, Osvaldo M Querin, Shinichi Saito, Robert Kelsall.
Abstract
A silicon compatible light source is crucial to develop a fully monolithic silicon photonics platform. Strain engineering in suspended Germanium membranes has offered a potential route for such a light source. However, biaxial structures have suffered from poor optical properties due to unfavorable strain distributions. Using a novel geometric approach and finite element modelling (FEM) structures with improved strain homogeneity were designed and fabricated. Micro-Raman (μ-Raman) spectroscopy was used to determine central strain values. Micro-photoluminescence (μ-PL) was used to study the effects of the strain profiles on light emission; we report a PL enhancement of up to 3x by optimizing curvature at a strain value of 0.5% biaxial strain. This geometric approach offers opportunity for enhancing the light emission in Germanium towards developing a practical on chip light source.Entities:
Year: 2017 PMID: 29041597 DOI: 10.1364/OE.25.022911
Source DB: PubMed Journal: Opt Express ISSN: 1094-4087 Impact factor: 3.894